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Summarizing User Opinions: A Method for Labeled-data Scarce Product Domains

  • Procedia Computer Science
  • Elsevier BV
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Abstract

Product reviews contain valuable information that can influence the online purchases. Extracting relevant opinions regarding the product by merely reading all the reviews is a herculean task. An automatic method for mining and summarizing opinions in these reviews is necessary for this purpose. Existing methods for opinion summarization requires pre-labeled data from the target domain or other sophisticated lexical resources. We solve the problems of existing methods by using cross-domain sentiment classification coupled with distributional similarity of opinion words to classify and summarize product reviews. Experimental analysis shows that using cross-domain sentiment classification for opinion summarization gives encouraging results.

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Publication details

DOI
10.1016/j.procs.2015.01.062
OpenAlex
W2027588291
Document type
conference-paper
Language
EN
Source
Procedia Computer Science
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